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This function checks if the first parameter is even, and if it is, adds that value to the second parameter. It uses void * and I have to convert to an int but I am having trouble with the syntax and how to properly cast, and use the pointers.

bool isEven(void *x, void* z) {

int * a = (int *)x;
int * b = (int *)z;

bool result = false;

if (*a % 2) {

    result = true;
    b += a;
}

return result;
}

What is wrong with my syntax? I get an error under 'a' saying "expression must have integral or enum type"

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3  
At least b += a line is wrong. –  Cthulhu Oct 28 '13 at 20:20
2  
Since a and b are pointers, and assuming you want to add a to b, you would need *b += *a. You should at least attempt to learn the syntax of a language before asking about it on SO - we are not a "teach me language X" site. –  user529758 Oct 28 '13 at 20:21
2  
Why are you using void* instead of just int –  Johan Lundberg Oct 28 '13 at 20:23
1  
In C++ you would never write such code like bool isEven(void*x, void*z); because there is no use for it. The only use for such ugly code is when using some old C code. As this is unavoidably very error prone, try to avoid that. –  Walter Oct 28 '13 at 20:31
    
Not only that, but this function doesn't do what it says it does. This should definitely be refactored into two different methods. I would never expect a function named isEven to modify the variables. –  Jazzy Josh Oct 28 '13 at 20:45
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closed as off-topic by H2CO3, WhozCraig, EdChum, dTDesign, Alvin Wong Oct 29 '13 at 9:06

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2 Answers

Your addition does not modify the integers, but the pointers. But pointers cannot be added.

Do instead:

*b += *a;
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You are trying to add one pointer to the other which is illegal operation in C++. You need to dereference the pointers first to use integers they are pointing to (if that is your intention in the first place):

*b += *a;

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Ah ok, how would I dereference the pointer, so that I would use it? –  user2140629 Oct 28 '13 at 20:30
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